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1.
Cell ; 156(1-2): 291-303, 2014 Jan 16.
Artículo en Inglés | MEDLINE | ID: mdl-24439383

RESUMEN

Neural stem cells (NSCs) exist in germinal centers of the adult brain and in the carotid body (CB), an oxygen-sensing organ that grows under chronic hypoxemia. How stem cell lineage differentiation into mature glomus cells is coupled with changes in physiological demand is poorly understood. Here, we show that hypoxia does not affect CB NSC proliferation directly. Rather, mature glomus cells expressing endothelin-1, the O2-sensing elements in the CB that secrete neurotransmitters in response to hypoxia, establish abundant synaptic-like contacts with stem cells, which express endothelin receptors, and instruct their growth. Inhibition of glomus cell transmitter release or their selective destruction markedly diminishes CB cell growth during hypoxia, showing that CB NSCs are under the direct "synaptic" control of the mature O2-sensitive cells. Thus, glomus cells not only acutely activate the respiratory center but also induce NSC-dependent CB hypertrophy necessary for acclimatization to chronic hypoxemia.


Asunto(s)
Cuerpo Carotídeo/metabolismo , Células-Madre Neurales/metabolismo , Oxígeno/metabolismo , Centro Respiratorio/metabolismo , Animales , Diferenciación Celular , Proliferación Celular , Ratones , Ratones Transgénicos , Prolil Hidroxilasas/metabolismo , Ratas , Ratas Wistar
2.
Nature ; 620(7975): 890-897, 2023 Aug.
Artículo en Inglés | MEDLINE | ID: mdl-37558881

RESUMEN

Alveolar epithelial type 1 (AT1) cells are necessary to transfer oxygen and carbon dioxide between the blood and air. Alveolar epithelial type 2 (AT2) cells serve as a partially committed stem cell population, producing AT1 cells during postnatal alveolar development and repair after influenza A and SARS-CoV-2 pneumonia1-6. Little is known about the metabolic regulation of the fate of lung epithelial cells. Here we report that deleting the mitochondrial electron transport chain complex I subunit Ndufs2 in lung epithelial cells during mouse gestation led to death during postnatal alveolar development. Affected mice displayed hypertrophic cells with AT2 and AT1 cell features, known as transitional cells. Mammalian mitochondrial complex I, comprising 45 subunits, regenerates NAD+ and pumps protons. Conditional expression of yeast NADH dehydrogenase (NDI1) protein that regenerates NAD+ without proton pumping7,8 was sufficient to correct abnormal alveolar development and avert lethality. Single-cell RNA sequencing revealed enrichment of integrated stress response (ISR) genes in transitional cells. Administering an ISR inhibitor9,10 or NAD+ precursor reduced ISR gene signatures in epithelial cells and partially rescued lethality in the absence of mitochondrial complex I function. Notably, lung epithelial-specific loss of mitochondrial electron transport chain complex II subunit Sdhd, which maintains NAD+ regeneration, did not trigger high ISR activation or lethality. These findings highlight an unanticipated requirement for mitochondrial complex I-dependent NAD+ regeneration in directing cell fate during postnatal alveolar development by preventing pathological ISR induction.


Asunto(s)
Células Epiteliales Alveolares , Diferenciación Celular , Linaje de la Célula , Pulmón , Mitocondrias , Estrés Fisiológico , Animales , Ratones , Células Epiteliales Alveolares/citología , Células Epiteliales Alveolares/metabolismo , Células Epiteliales Alveolares/patología , Pulmón/citología , Pulmón/metabolismo , Pulmón/patología , Mitocondrias/enzimología , Mitocondrias/metabolismo , NAD/metabolismo , NADH Deshidrogenasa/metabolismo , Protones , RNA-Seq , Saccharomyces cerevisiae/genética , Saccharomyces cerevisiae/metabolismo , Análisis de Expresión Génica de una Sola Célula
3.
Nature ; 599(7886): 650-656, 2021 11.
Artículo en Inglés | MEDLINE | ID: mdl-34732887

RESUMEN

Loss of functional mitochondrial complex I (MCI) in the dopaminergic neurons of the substantia nigra is a hallmark of Parkinson's disease1. Yet, whether this change contributes to Parkinson's disease pathogenesis is unclear2. Here we used intersectional genetics to disrupt the function of MCI in mouse dopaminergic neurons. Disruption of MCI induced a Warburg-like shift in metabolism that enabled neuronal survival, but triggered a progressive loss of the dopaminergic phenotype that was first evident in nigrostriatal axons. This axonal deficit was accompanied by motor learning and fine motor deficits, but not by clear levodopa-responsive parkinsonism-which emerged only after the later loss of dopamine release in the substantia nigra. Thus, MCI dysfunction alone is sufficient to cause progressive, human-like parkinsonism in which the loss of nigral dopamine release makes a critical contribution to motor dysfunction, contrary to the current Parkinson's disease paradigm3,4.


Asunto(s)
Complejo I de Transporte de Electrón/genética , Complejo I de Transporte de Electrón/metabolismo , Trastornos Parkinsonianos/metabolismo , Trastornos Parkinsonianos/patología , Animales , Axones/efectos de los fármacos , Axones/metabolismo , Axones/patología , Muerte Celular , Dendritas/metabolismo , Dendritas/patología , Modelos Animales de Enfermedad , Progresión de la Enfermedad , Dopamina/metabolismo , Neuronas Dopaminérgicas/efectos de los fármacos , Neuronas Dopaminérgicas/metabolismo , Neuronas Dopaminérgicas/patología , Femenino , Levodopa/farmacología , Levodopa/uso terapéutico , Masculino , Ratones , Destreza Motora/efectos de los fármacos , NADH Deshidrogenasa/deficiencia , NADH Deshidrogenasa/genética , Trastornos Parkinsonianos/tratamiento farmacológico , Trastornos Parkinsonianos/fisiopatología , Fenotipo , Sustancia Negra/citología , Sustancia Negra/efectos de los fármacos , Sustancia Negra/metabolismo
4.
Proc Natl Acad Sci U S A ; 119(39): e2202178119, 2022 09 27.
Artículo en Inglés | MEDLINE | ID: mdl-36122208

RESUMEN

Acute oxygen (O2) sensing is essential for adaptation of organisms to hypoxic environments or medical conditions with restricted exchange of gases in the lung. The main acute O2-sensing organ is the carotid body (CB), which contains neurosecretory chemoreceptor (glomus) cells innervated by sensory fibers whose activation by hypoxia elicits hyperventilation and increased cardiac output. Glomus cells have mitochondria with specialized metabolic and electron transport chain (ETC) properties. Reduced mitochondrial complex (MC) IV activity by hypoxia leads to production of signaling molecules (NADH and reactive O2 species) in MCI and MCIII that modulate membrane ion channel activity. We studied mice with conditional genetic ablation of MCIII that disrupts the ETC in the CB and other catecholaminergic tissues. Glomus cells survived MCIII dysfunction but showed selective abolition of responsiveness to hypoxia (increased [Ca2+] and transmitter release) with normal responses to other stimuli. Mitochondrial hypoxic NADH and reactive O2 species signals were also suppressed. MCIII-deficient mice exhibited strong inhibition of the hypoxic ventilatory response and altered acclimatization to sustained hypoxia. These data indicate that a functional ETC, with coupling between MCI and MCIV, is required for acute O2 sensing. O2 regulation of breathing results from the integrated action of mitochondrial ETC complexes in arterial chemoreceptors.


Asunto(s)
Complejo III de Transporte de Electrones , Oxígeno , Respiración , Animales , Hipoxia de la Célula/fisiología , Complejo III de Transporte de Electrones/genética , Complejo III de Transporte de Electrones/metabolismo , Canales Iónicos , Ratones , NAD/metabolismo , Oxígeno/metabolismo
5.
Crit Rev Biochem Mol Biol ; 57(2): 205-225, 2022 04.
Artículo en Inglés | MEDLINE | ID: mdl-34852688

RESUMEN

Oxygen (O2) is essential for life and therefore the supply of sufficient O2 to the tissues is a major physiological challenge. In mammals, a deficit of O2 (hypoxia) triggers rapid cardiorespiratory reflexes (e.g. hyperventilation and increased heart output) that within a few seconds increase the uptake of O2 by the lungs and its distribution throughout the body. The prototypical acute O2-sensing organ is the carotid body (CB), which contains sensory glomus cells expressing O2-regulated ion channels. In response to hypoxia, glomus cells depolarize and release transmitters which activate afferent fibers terminating at the brainstem respiratory and autonomic centers. In this review, we summarize the basic properties of CB chemoreceptor cells and the essential role played by their specialized mitochondria in acute O2 sensing and signaling. We focus on recent data supporting a "mitochondria-to-membrane signaling" model of CB chemosensory transduction. The possibility that the differential expression of specific subunit isoforms and enzymes could allow mitochondria to play a generalized adaptive O2-sensing and signaling role in a wide variety of cells is also discussed.


Asunto(s)
Cuerpo Carotídeo , Oxígeno , Animales , Cuerpo Carotídeo/metabolismo , Células Quimiorreceptoras/metabolismo , Hipoxia/metabolismo , Mamíferos/metabolismo , Mitocondrias/metabolismo , Oxígeno/metabolismo
6.
Annu Rev Physiol ; 82: 127-149, 2020 02 10.
Artículo en Inglés | MEDLINE | ID: mdl-31618601

RESUMEN

The carotid body (CB) is an arterial chemoreceptor organ located in the carotid bifurcation and has a well-recognized role in cardiorespiratory regulation. The CB contains neurosecretory sensory cells (glomus cells), which release transmitters in response to hypoxia, hypercapnia, and acidemia to activate afferent sensory fibers terminating in the respiratory and autonomic brainstem centers. Knowledge of the physiology of the CB has progressed enormously in recent years. Herein we review advances concerning the organization and function of the cellular elements of the CB, with emphasis on the molecular mechanisms of acute oxygen sensing by glomus cells. We introduce the modern view of the CB as a multimodal integrated metabolic sensor and describe the properties of the CB stem cell niche, which support CB growth during acclimatization to chronic hypoxia. Finally, we discuss the increasing medical relevance of CB dysfunction and its potential impact on the mechanisms of disease.


Asunto(s)
Cuerpo Carotídeo/metabolismo , Cuerpo Carotídeo/fisiología , Animales , Células Quimiorreceptoras/metabolismo , Humanos
7.
J Physiol ; 601(5): 1017-1036, 2023 03.
Artículo en Inglés | MEDLINE | ID: mdl-36647759

RESUMEN

The carotid body (CB) is a prototypical acute oxygen (O2 )-sensing organ that mediates reflex hyperventilation and increased cardiac output in response to hypoxaemia. CB overactivation, secondary to the repeated stimulation produced by the recurrent episodes of intermittent hypoxia, is believed to contribute to the pathogenesis of sympathetic hyperactivity present in sleep apnoea patients. Although CB functional plasticity induced by chronic intermittent hypoxia (CIH) has been demonstrated, the underlying mechanisms are not fully elucidated. Here, we show that CIH induces a small increase in CB volume and rearrangement of cell types in the CB, characterized by a mobilization of immature quiescent neuroblasts, which enter a process of differentiation into mature, O2 -sensing and neuron-like, chemoreceptor glomus cells. Prospective isolation of individual cell classes has allowed us to show that maturation of CB neuroblasts is paralleled by an upregulation in the expression of specific glomus cell genes involved in acute O2 -sensing. CIH enhances mitochondrial responsiveness to hypoxia in maturing neuroblasts as well as in glomus cells. These data provide novel perspectives on the pathogenesis of CB-mediated sympathetic overflow that may lead to the development of new pharmacological strategies of potential applicability in sleep apnoea patients. KEY POINTS: Obstructive sleep apnoea is a frequent condition in the human population that predisposes to severe cardiovascular and metabolic alterations. Activation of the carotid body, the main arterial oxygen-sensing chemoreceptor, by repeated episodes of hypoxaemia induces exacerbation of the carotid body-mediated chemoreflex and contributes to sympathetic overflow characteristic of sleep apnoea patients. In rats, chronic intermittent hypoxaemia induces fast neurogenesis in the carotid body with rapid activation of neuroblasts, which enter a process of proliferation and maturation into O2 -sensing chemoreceptor glomus cells. Maturing carotid body neuroblasts and glomus cells exposed to chronic intermittent hypoxia upregulate genes involved in acute O2 sensing and enhance mitochondrial responsiveness to hypoxia. These findings provide novel perspectives on the pathogenesis of carotid body-mediated sympathetic hyperactivation. Pharmacological modulation of carotid body fast neurogenesis could help to ameliorate the deleterious effects of chronic intermittent hypoxaemia in sleep apnoea patients.


Asunto(s)
Cuerpo Carotídeo , Apnea Obstructiva del Sueño , Ratas , Humanos , Animales , Cuerpo Carotídeo/metabolismo , Hipoxia , Oxígeno/metabolismo , Neurogénesis
9.
Adv Exp Med Biol ; 1427: 153-162, 2023.
Artículo en Inglés | MEDLINE | ID: mdl-37322346

RESUMEN

Acute oxygen (O2) sensing and adaptation to hypoxia are essential for physiological homeostasis. The prototypical acute O2 sensing organ is the carotid body, which contains chemosensory glomus cells expressing O2-sensitive K+ channels. Inhibition of these channels during hypoxia leads to cell depolarization, transmitter release, and activation of afferent sensory fibers terminating in the brain stem respiratory and autonomic centers. Focusing on recent data, here we discuss the special sensitivity of glomus cell mitochondria to changes in O2 tension due to Hif2α-dependent expression of several atypical mitochondrial electron transport chain subunits and enzymes. These are responsible for an accelerated oxidative metabolism and the strict dependence of mitochondrial complex IV activity on O2 availability. We report that ablation of Epas1 (the gene coding Hif2α) causes a selective downregulation of the atypical mitochondrial genes and a strong inhibition of glomus cell acute responsiveness to hypoxia. Our observations indicate that Hif2α expression is required for the characteristic metabolic profile of glomus cells and provide a mechanistic explanation for the acute O2 regulation of breathing.


Asunto(s)
Cuerpo Carotídeo , Humanos , Cuerpo Carotídeo/fisiología , Oxígeno/metabolismo , Hipoxia/genética , Hipoxia/metabolismo , Mitocondrias/genética , Mitocondrias/metabolismo , Membranas Mitocondriales/metabolismo
10.
Int J Mol Sci ; 24(6)2023 Mar 14.
Artículo en Inglés | MEDLINE | ID: mdl-36982650

RESUMEN

Antiparkinsonian carotid body (CB) cell therapy has been proven to be effective in rodent and nonhuman primate models of Parkinson's disease (PD), exerting trophic protection and restoration of the dopaminergic nigrostriatal pathway. These neurotrophic actions are mediated through the release of high levels of glial-cell-line-derived neurotrophic factor (GDNF) by the CB transplant. Pilot clinical trials have also shown that CB autotransplantation can improve motor symptoms in PD patients, although its effectiveness is affected by the scarcity of the grafted tissue. Here, we analyzed the antiparkinsonian efficacy of in vitro-expanded CB dopaminergic glomus cells. Intrastriatal xenografts of rat CB neurospheres were shown to protect nigral neurons from degeneration in a chronic MPTP mouse PD model. In addition, grafts performed at the end of the neurotoxic treatment resulted in the repair of striatal dopaminergic terminals through axonal sprouting. Interestingly, both neuroprotective and reparative effects induced by in vitro-expanded CB cells were similar to those previously reported by the use of CB transplants. This action could be explained because stem-cell-derived CB neurospheres produce similar amounts of GDNF compared to native CB tissue. This study provides the first evidence that in vitro-expanded CB cells could be a clinical option for cell therapy in PD.


Asunto(s)
Cuerpo Carotídeo , Enfermedad de Parkinson , Ratones , Ratas , Humanos , Animales , Factor Neurotrófico Derivado de la Línea Celular Glial/metabolismo , Cuerpo Carotídeo/metabolismo , Enfermedad de Parkinson/terapia , Enfermedad de Parkinson/metabolismo , Dopamina/metabolismo , Neuronas Dopaminérgicas/metabolismo , Trasplante de Células , Sustancia Negra/metabolismo , Modelos Animales de Enfermedad , Cuerpo Estriado/metabolismo
11.
FASEB J ; 35(2): e21227, 2021 02.
Artículo en Inglés | MEDLINE | ID: mdl-33247500

RESUMEN

Mutations in any of the genes encoding the four subunits of succinate dehydrogenase (SDH), a mitochondrial membrane-bound enzyme complex that is involved in both the tricarboxylic acid cycle and the electron transport chain, can lead to a variety of disorders. Recognized conditions with such mutations include Leigh syndrome and hereditary tumors such as pheochromocytoma and paraganglioma (PPGL), renal cell carcinoma, and gastrointestinal stromal tumor. Tumors appear in SDH mutation carriers with dominant inheritance due to loss of heterozygosity in susceptible cells. Here, we describe a mouse model intended to reproduce hereditary PPGL through Cre-mediated loss of SDHC in cells that express tyrosine hydroxylase (TH), a compartment where PPGL is known to originate. We report that while there is modest expansion of TH+ glomus cells in the carotid body upon SDHC loss, PPGL is not observed in such mice, even in the presence of a conditional dominant negative p53 protein and chronic hypoxia. Instead, we report an unexpected phenotype of nondiabetic obesity beginning at about 20 weeks of age. We hypothesize that this obesity is caused by TH+ cell loss or altered phenotype in key compartments of the central nervous system responsible for regulating feeding behavior, coupled with metabolic changes due to loss of peripheral catecholamine production.


Asunto(s)
Neoplasias de las Glándulas Suprarrenales/genética , Modelos Animales de Enfermedad , Síndromes Neoplásicos Hereditarios/genética , Obesidad/genética , Fenotipo , Feocromocitoma/genética , Succinato Deshidrogenasa/genética , Neoplasias de las Glándulas Suprarrenales/patología , Animales , Carcinogénesis/genética , Carcinogénesis/patología , Masculino , Ratones , Ratones Endogámicos C57BL , Síndromes Neoplásicos Hereditarios/patología , Obesidad/patología , Feocromocitoma/patología , Succinato Deshidrogenasa/deficiencia
12.
J Neurosci Res ; 98(9): 1764-1779, 2020 09.
Artículo en Inglés | MEDLINE | ID: mdl-31663646

RESUMEN

Glial-derived neurotrophic factor (GDNF) has been proposed as a potent neurotrophic factor with the potential to cure neurodegenerative diseases. In the cochlea, GDNF has been detected in auditory neurons and sensory receptor cells and its expression is upregulated upon trauma. Moreover, the application of GDNF in different animal models of deafness has shown its capacity to prevent hearing loss and promoted its future use in therapeutic trials in humans. In the present study we have examined the endogenous requirement of GDNF during auditory development in mice. Using a lacZ knockin allele we have confirmed the expression of GDNF in the cochlea including its sensory regions during development. Global inactivation of GDNF throughout the hearing system using a Foxg1-Cre line causes perinatal lethality but reveals no apparent defects during formation of the cochlea. Using TrkC-Cre and Atoh1-Cre lines, we were able to generate viable mutants lacking GDNF in auditory neurons or both auditory neurons and sensory hair cells. These mutants show normal frequency-dependent auditory thresholds. However, mechanoelectrical response properties of outer hair cells (OHCs) in TrkC-Cre GDNF mutants are altered at low thresholds. Furthermore, auditory brainstem wave analysis shows an abnormal increase of wave I. On the other hand, Atoh1-Cre GDNF mutants show normal OHC function but their auditory brainstem wave pattern is reduced at the levels of wave I, III and IV. These results show that GDNF expression during the development is required to maintain functional hearing at different levels of the auditory system.


Asunto(s)
Factor Neurotrófico Derivado de la Línea Celular Glial/deficiencia , Factor Neurotrófico Derivado de la Línea Celular Glial/fisiología , Audición/fisiología , Animales , Umbral Auditivo , Cóclea/metabolismo , Oído Interno/metabolismo , Potenciales Evocados Auditivos del Tronco Encefálico , Factor Neurotrófico Derivado de la Línea Celular Glial/metabolismo , Células Ciliadas Auditivas/patología , Ratones , Ratones Endogámicos C57BL , Ratones Transgénicos
13.
Mov Disord ; 35(4): 565-576, 2020 04.
Artículo en Inglés | MEDLINE | ID: mdl-31930748

RESUMEN

BACKGROUND: The glial cell line-derived neurotrophic factor has a potent neuroprotective action on mesencephalic dopamine neurons, which are progressively lost in Parkinson's disease. Intrastriatal administration of this factor is a promising therapy for Parkinson's disease. Glial cell line-derived neurotrophic factor is naturally produced in restricted cerebral regions, such as the striatum, septum, and thalamus; however, its effects in the adult brain remain under debate. OBJECTIVES: We sought to clarify the physiologic role of endogenous glial cell line-derived neurotrophic factor in the survival of catecholaminergic neurons of the substantia nigra pars compacta and the locus coeruleus in adult mice. METHODS: We used 2 new Cre recombinase-based mouse models to delete a floxed-glial cell line-derived neurotrophic factor gene. The first model had Cre expression in the parvalbumin expressing interneurons, as these cells represent the major source of striatal glial cell line-derived neurotrophic factor. The second model was an estrogen receptor 2-based inducible Cre triggered by tamoxifen at 2 months of age. RESULTS: We found that the floxed-glial cell line-derived neurotrophic factor gene was resilient to ablation by Cre-induced recombination and that parvalbumin-driven Cre was particularly inefficient to do so. The inducible-Cre model allowed an average 70% to 80% reduction in glial cell line-derived neurotrophic factor messenger ribonucleic acid and protein in striatum and septum with moderate significant loss of catecholamine neurons in the nigrostriatal pathway and, more markedly, in the locus coeruleus. This was accompanied with mild locomotor decline. CONCLUSIONS: Our data support qualitatively the view that brain glial cell line-derived neurotrophic factor is needed for the maintenance of adult central catecholaminergic neurons. © 2020 International Parkinson and Movement Disorder Society.


Asunto(s)
Fármacos Neuroprotectores , Enfermedad de Parkinson , Animales , Cuerpo Estriado , Factor Neurotrófico Derivado de la Línea Celular Glial/genética , Ratones , Neostriado , Neuronas , Sustancia Negra
14.
EMBO Rep ; 19(3)2018 03.
Artículo en Inglés | MEDLINE | ID: mdl-29335248

RESUMEN

Unlike other neural peripheral organs, the adult carotid body (CB) has a remarkable structural plasticity, as it grows during acclimatization to hypoxia. The CB contains neural stem cells that can differentiate into oxygen-sensitive glomus cells. However, an extended view is that, unlike other catecholaminergic cells of the same lineage (sympathetic neurons or chromaffin cells), glomus cells can divide and thus contribute to CB hypertrophy. Here, we show that O2-sensitive mature glomus cells are post-mitotic. However, we describe an unexpected population of pre-differentiated, immature neuroblasts that express catecholaminergic markers and contain voltage-dependent ion channels, but are unresponsive to hypoxia. Neuroblasts are quiescent in normoxic conditions, but rapidly proliferate and differentiate into mature glomus cells during hypoxia. This unprecedented "fast neurogenesis" is stimulated by ATP and acetylcholine released from mature glomus cells. CB neuroblasts, which may have evolved to facilitate acclimatization to hypoxia, could contribute to the CB oversensitivity observed in highly prevalent human diseases.


Asunto(s)
Adaptación Fisiológica/genética , Cuerpo Carotídeo/crecimiento & desarrollo , Diferenciación Celular/genética , Hipoxia , Neurogénesis/genética , Adenosina Trifosfato/metabolismo , Cuerpo Carotídeo/metabolismo , Proliferación Celular/genética , Humanos , Hipoxia/metabolismo , Células-Madre Neurales/citología , Células-Madre Neurales/metabolismo , Oxígeno/metabolismo
15.
Int J Mol Sci ; 21(21)2020 Nov 03.
Artículo en Inglés | MEDLINE | ID: mdl-33153142

RESUMEN

The carotid body (CB), a neural-crest-derived organ and the main arterial chemoreceptor in mammals, is composed of clusters of cells called glomeruli. Each glomerulus contains neuron-like, O2-sensing glomus cells, which are innervated by sensory fibers of the petrosal ganglion and are located in close contact with a dense network of fenestrated capillaries. In response to hypoxia, glomus cells release transmitters to activate afferent fibers impinging on the respiratory and autonomic centers to induce hyperventilation and sympathetic activation. Glomus cells are embraced by interdigitating processes of sustentacular, glia-like, type II cells. The CB has an extraordinary structural plasticity, unusual for a neural tissue, as it can grow several folds its size in subjects exposed to sustained hypoxia (as for example in high altitude dwellers or in patients with cardiopulmonary diseases). CB growth in hypoxia is mainly due to the generation of new glomeruli and blood vessels. In recent years it has been shown that the adult CB contains a collection of quiescent multipotent stem cells, as well as immature progenitors committed to the neurogenic or the angiogenic lineages. Herein, we review the main properties of the different cell types in the CB germinal niche. We also summarize experimental data suggesting that O2-sensitive glomus cells are the master regulators of CB plasticity. Upon exposure to hypoxia, neurotransmitters and neuromodulators released by glomus cells act as paracrine signals that induce proliferation and differentiation of multipotent stem cells and progenitors, thus causing CB hypertrophy and an increased sensory output. Pharmacological modulation of glomus cell activity might constitute a useful clinical tool to fight pathologies associated with exaggerated sympathetic outflow due to CB overactivation.


Asunto(s)
Cuerpo Carotídeo/citología , Neurotransmisores/fisiología , Nicho de Células Madre/fisiología , Adaptación Fisiológica/fisiología , Animales , Diferenciación Celular/fisiología , Humanos , Hipoxia/metabolismo , Hipoxia/fisiopatología , Neurogénesis/fisiología , Neuronas/fisiología , Neurotransmisores/metabolismo , Oxígeno/metabolismo
17.
Cell Tissue Res ; 372(2): 417-425, 2018 05.
Artículo en Inglés | MEDLINE | ID: mdl-29368257

RESUMEN

The carotid body (CB) is the major arterial chemoreceptor responsible for the detection of acute decreases in O2 tension (hypoxia) in arterial blood that trigger hyperventilation and sympathetic activation. The CB contains O2-sensitive glomus (chief) cells, which respond to hypoxia with the release of transmitters to activate sensory nerve fibers impinging upon the brain respiratory and autonomic centers. During exposure to sustained hypoxia (for weeks or months), the CB grows several-fold in size, a response associated with acclimatization to high altitude or to medical conditions presenting hypoxemia. Here, I briefly present recent advances on the mechanisms underlying glomus cell sensitivity to hypoxia, in particular the role of mitochondrial complex I in acute oxygen sensing. I also summarize the properties of adult CB stem cells and of glomus cell-stem cell synapses, which contribute to CB hypertrophy in chronic hypoxia. A note on the relationship between hypoxic CB growth and tumorigenesis is included. Finally, the medical implications of CB pathophysiology are discussed.


Asunto(s)
Cuerpo Carotídeo/metabolismo , Hipoxia/metabolismo , Oxígeno/metabolismo , Células Madre/metabolismo , Animales , Carcinogénesis/metabolismo , Carcinogénesis/patología , Humanos
18.
Stem Cells ; 35(7): 1687-1703, 2017 07.
Artículo en Inglés | MEDLINE | ID: mdl-28472853

RESUMEN

Coenzyme Q10 (CoQ10 ) plays a crucial role in mitochondria as an electron carrier within the mitochondrial respiratory chain (MRC) and is an essential antioxidant. Mutations in genes responsible for CoQ10 biosynthesis (COQ genes) cause primary CoQ10 deficiency, a rare and heterogeneous mitochondrial disorder with no clear genotype-phenotype association, mainly affecting tissues with high-energy demand including brain and skeletal muscle (SkM). Here, we report a four-year-old girl diagnosed with minor mental retardation and lethal rhabdomyolysis harboring a heterozygous mutation (c.483G > C (E161D)) in COQ4. The patient's fibroblasts showed a decrease in [CoQ10 ], CoQ10 biosynthesis, MRC activity affecting complexes I/II + III, and respiration defects. Bona fide induced pluripotent stem cell (iPSCs) lines carrying the COQ4 mutation (CQ4-iPSCs) were generated, characterized and genetically edited using the CRISPR-Cas9 system (CQ4ed -iPSCs). Extensive differentiation and metabolic assays of control-iPSCs, CQ4-iPSCs and CQ4ed -iPSCs demonstrated a genotype association, reproducing the disease phenotype. The COQ4 mutation in iPSC was associated with CoQ10 deficiency, metabolic dysfunction, and respiration defects. iPSC differentiation into SkM was compromised, and the resulting SkM also displayed respiration defects. Remarkably, iPSC differentiation in dopaminergic or motor neurons was unaffected. This study offers an unprecedented iPSC model recapitulating CoQ10 deficiency-associated functional and metabolic phenotypes caused by COQ4 mutation. Stem Cells 2017;35:1687-1703.


Asunto(s)
Ataxia/genética , Discapacidad Intelectual/genética , Mitocondrias/genética , Enfermedades Mitocondriales/genética , Proteínas Mitocondriales/genética , Debilidad Muscular/genética , Rabdomiólisis/genética , Ubiquinona/análogos & derivados , Ubiquinona/deficiencia , Ataxia/enzimología , Ataxia/patología , Sistemas CRISPR-Cas , Diferenciación Celular , Preescolar , Neuronas Dopaminérgicas/citología , Neuronas Dopaminérgicas/metabolismo , Proteínas del Complejo de Cadena de Transporte de Electrón/genética , Proteínas del Complejo de Cadena de Transporte de Electrón/metabolismo , Resultado Fatal , Femenino , Fibroblastos/metabolismo , Fibroblastos/patología , Edición Génica/métodos , Expresión Génica , Genes Letales , Humanos , Células Madre Pluripotentes Inducidas/metabolismo , Células Madre Pluripotentes Inducidas/patología , Discapacidad Intelectual/enzimología , Discapacidad Intelectual/patología , Mitocondrias/enzimología , Mitocondrias/patología , Enfermedades Mitocondriales/enzimología , Enfermedades Mitocondriales/patología , Proteínas Mitocondriales/deficiencia , Neuronas Motoras/citología , Neuronas Motoras/metabolismo , Debilidad Muscular/enzimología , Debilidad Muscular/patología , Cultivo Primario de Células , Rabdomiólisis/enzimología , Rabdomiólisis/patología , Ubiquinona/genética
19.
J Physiol ; 595(18): 6091-6120, 2017 09 15.
Artículo en Inglés | MEDLINE | ID: mdl-28718507

RESUMEN

KEY POINTS: Glomus cells in the carotid body (CB) and chromaffin cells in the adrenal medulla (AM) are essential for reflex cardiorespiratory adaptation to hypoxia. However, the mechanisms whereby these cells detect changes in O2 tension are poorly understood. The metabolic properties of acute O2 -sensing cells have been investigated by comparing the transcriptomes of CB and AM cells, which are O2 -sensitive, with superior cervical ganglion neurons, which are practically O2 -insensitive. In O2 -sensitive cells, we found a characteristic prolyl hydroxylase 3 down-regulation and hypoxia inducible factor 2α up-regulation, as well as overexpression of genes coding for three atypical mitochondrial electron transport subunits and pyruvate carboxylase, an enzyme that replenishes tricarboxylic acid cycle intermediates. In agreement with this observation, the inhibition of succinate dehydrogenase impairs CB acute O2 sensing. The responsiveness of peripheral chemoreceptor cells to acute hypoxia depends on a 'signature metabolic profile'. ABSTRACT: Acute O2 sensing is a fundamental property of cells in the peripheral chemoreceptors, e.g. glomus cells in the carotid body (CB) and chromaffin cells in the adrenal medulla (AM), and is necessary for adaptation to hypoxia. These cells contain O2 -sensitive ion channels, which mediate membrane depolarization and transmitter release upon exposure to hypoxia. However, the mechanisms underlying the detection of changes in O2 tension by cells are still poorly understood. Recently, we suggested that CB glomus cells have specific metabolic features that favour the accumulation of reduced quinone and the production of mitochondrial NADH and reactive oxygen species during hypoxia. These signals alter membrane ion channel activity. To investigate the metabolic profile characteristic of acute O2 -sensing cells, we used adult mice to compare the transcriptomes of three cell types derived from common sympathoadrenal progenitors, but exhibiting variable responsiveness to acute hypoxia: CB and AM cells, which are O2 -sensitive (glomus cells > chromaffin cells), and superior cervical ganglion neurons, which are practically O2 -insensitive. In the O2 -sensitive cells, we found a characteristic mRNA expression pattern of prolyl hydroxylase 3/hypoxia inducible factor 2α and up-regulation of several genes, in particular three atypical mitochondrial electron transport subunits and some ion channels. In addition, we found that pyruvate carboxylase, an enzyme fundamental to tricarboxylic acid cycle anaplerosis, is overexpressed in CB glomus cells. We also observed that the inhibition of succinate dehydrogenase impairs CB acute O2 sensing. Our data suggest that responsiveness to acute hypoxia depends on a 'signature metabolic profile' in chemoreceptor cells.


Asunto(s)
Cuerpo Carotídeo/citología , Células Quimiorreceptoras/metabolismo , Hipoxia/metabolismo , Oxígeno/metabolismo , Transcriptoma , Animales , Factores de Transcripción con Motivo Hélice-Asa-Hélice Básico/genética , Factores de Transcripción con Motivo Hélice-Asa-Hélice Básico/metabolismo , Cuerpo Carotídeo/metabolismo , Células Cultivadas , Femenino , Isocitrato Deshidrogenasa/genética , Isocitrato Deshidrogenasa/metabolismo , Masculino , Ratones , Ratones Endogámicos C57BL , Canales de Potasio/genética , Canales de Potasio/metabolismo , Procolágeno-Prolina Dioxigenasa/genética , Procolágeno-Prolina Dioxigenasa/metabolismo
20.
Stem Cells ; 34(6): 1637-50, 2016 06.
Artículo en Inglés | MEDLINE | ID: mdl-26866353

RESUMEN

Neural stem cells (NSCs) are promising tools for understanding nervous system plasticity and repair, but their use is hampered by the lack of markers suitable for their prospective isolation and characterization. The carotid body (CB) contains a population of peripheral NSCs, which support organ growth during acclimatization to hypoxia. We have set up CB neurosphere (NS) cultures enriched in differentiated neuronal (glomus) cells versus undifferentiated progenitors to investigate molecular hallmarks of cell classes within the CB stem cell (CBSC) niche. Microarray gene expression analysis in NS is compatible with CBSCs being neural crest derived-multipotent progenitor cells able to sustain CB growth upon exposure to hypoxia. Moreover, we have identified CD10 as a marker suitable for isolation of a population of CB mesectoderm-committed progenitor cells. CD10 + cells are resting in normoxia, and during hypoxia they are activated to proliferate and to eventually complete maturation into mesectodermal cells, thus participating in the angiogenesis necessary for CB growth. Our results shed light into the molecular and cellular mechanisms involved in CBSC fate choice, favoring a potential use of these cells for cell therapy. Stem Cells 2016;34:1637-1650.


Asunto(s)
Cuerpo Carotídeo/citología , Linaje de la Célula , Ectodermo/citología , Perfilación de la Expresión Génica , Mesodermo/citología , Neprilisina/metabolismo , Cresta Neural/citología , Células-Madre Neurales/citología , Animales , Biomarcadores/metabolismo , Recuento de Células , Diferenciación Celular/genética , Hipoxia de la Célula/genética , Endotelina-1/metabolismo , Regulación de la Expresión Génica , Ratones Transgénicos , Células-Madre Neurales/metabolismo , Análisis de Secuencia por Matrices de Oligonucleótidos , Ratas Wistar , Esferoides Celulares/citología , Nicho de Células Madre/genética
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